One aspect of the present invention is a positioner for an optical element. The positioner includes a base having a receptacle and a substantially planar surface slidably engageable with a substrate. The positioner also includes a mounting platform disposed in the receptacle. The receptacle constrains the mounting platform to translation in a direction substantially perpendicular to the substantially planar surface and the mounting platform is configured so as to be free to rotate about three orthogonal axes within the receptacle. The optical element is coupled to the mounting platform. The optical element is aligned with a second optical element by selectively positioning the mounting platform.
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1. A positioner for an optical element comprising:
a base having: a substantially planar surface slidably engageable with a substrate; and a receptacle; and a mounting platform disposed in said receptacle, wherein the optical element is coupled to said mounting platform and said mounting platform is selectively positionable to align the optical element with a second optical element and said mounting platform is constrained to translation in a direction substantially perpendicular to said substantially planar surface and is free to rotate about three orthogonal axes within the receptacle.
13. A positioner for an optical element comprising:
a base slidably moveable on a surface, the base having a substantially cylindrical receptacle; and a mounting platform disposed within said receptacle, the mounting platform having an arcuate surface; wherein said mounting platform is free to rotate about three orthogonal axes within the receptacle, and is selectively positionable within said receptacle; wherein the optical element is coupled to said mounting platform and is positioned by translating and rotating said mounting platform and sliding said base on the substrate and then coupling said mounting platform to said base and said base to the substrate.
26. An optical device comprising:
a substrate having a surface; a first optical element coupled to said substrate; a base disposed on said surface, said base having: two vertical members defining a receptacle, said receptacle having a longitudinal axis, wherein said longitudinal axis is inclined with respect to said surface; a mounting platform disposed in said receptacle, the mounting platform being free to rotate about three orthogonal axes within the receptacle; and a second optical element coupled to said mounting platform; wherein, said receptacle constrains said mounting platform to reciprocal lineal motion along the longitudinal axis of the receptacle. 2. A positioner for an optical element comprising:
a base having: substantially planar surface in slidable contact, with a substrate; a first vertical member; and a second vertical member, wherein said first vertical member and said second vertical member define a receptacle; and a mounting platform disposed in said receptacle, wherein said mounting platform is free to rotate about three orthogonal axes within the receptacle, and is selectively positionable to align the optical element with a second optical element; and wherein after the optical element is aligned with the second optical element said base is coupled to the substrate and said mounting platform is coupled to said base.
27. A method for aligning optical elements comprising the steps of:
selecting a first optical element; selecting a mounting platform; coupling said first optical element to said mounting platform; selecting a base having a receptacle; placing said mounting platform in said receptacle, the mounting platform being free to rotate about three orthogonal axes within the receptacle, thereby forming an optical positioner; selecting an optical platform; selecting a second optical element; coupling said second optical element to said optical platform; placing said optical positioner proximate to said second optical element; aligning said first optical element and said second optical element; coupling said base to said optical platform; and coupling said mounting platform to said base.
11. A positioner for an optical element comprising:
a base having: a substantially planar surface in slidable contact with a substrate; a first concave surface; and a second concave surface, wherein said first concave surface and said second concave surface have substantially the same radius of curvature and the origins of said first concave surface and said second concave surface are substantially coincident; and a mounting platform coupled to said base supporting the optical element in a certain position, wherein said mounting platform is disposed between said first concave surface and said second concave surface, and before said mounting platform is coupled to said base and said mounting platform is constrained to translation in a single direction and is free to rotate about three orthogonal axes within the receptacle.
33. A method for positioning an optical element comprising the steps of:
providing an optical element, the optical element having an optical axis; providing a mounting platform; coupling the optical element to the mounting platform; providing a base, said base having a receptacle; placing the mounting platform in the receptacle, the mounting platform being free to rotate about three orthogonal axes within the receptacle, thereby forming an assembly; placing the assembly on a surface; aligning the optical element in accordance with a predetermined criteria coupling the assembly to the surface; and coupling the mounting platform to the base; wherein the step of aligning includes the steps of translating the assembly along the surface, translating the mounting platform within the receptacle and rotating the mounting platform within the receptacle.
17. A method for positioning an optical element comprising the steps of:
providing an optical element, the optical element having an optical axis; providing a mounting platform; coupling the optical element to the mounting platform; providing a base, said base having a receptacle; placing the mounting platform in the receptacle, the mounting platform being free to rotate about three orthogonal axes within the receptacle, thereby forming an assembly; placing the assembly on a surface; aligning the optical element in accordance with a predetermined criteria coupling the assembly to the surface; and coupling the mounting platform to the base; wherein the step of aligning includes the steps of translating the assembly along the surface, translating the mounting platform within the receptacle and rotating the mounting platform within the receptacle.
12. A positioner for an optical element comprising:
a base having: a substantially planar surface slidably engageable with a substrate; a first vertical member having: a first arcuate surface, wherein said first vertical member defines a slot; a second vertical member having: a second arcuate surface, wherein said second vertical member defines a slot; wherein said first arcuate surface and said second arcuate surface define a receptacle; and a mounting platform disposed within said receptacle having: a third arcuate surface slidably and rotationally engageable with said receptacle, wherein said mounting platform is free to rotate about three orthogonal axes within the receptacle, and is selectively positionable; wherein the optical element is positioned by translating and rotating said mounting platform and sliding said base on said substrate and then coupling said mounting platform to said base and said base to the substrate.
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moving said base with respect to said second optical element; rotating said mounting platform; and moving said mounting platform linearly with respect to said base.
29. The method of
moving said base in a plane; moving said mounting platform perpendicular to said plane; and rotating said mounting platform.
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1. Field of the Invention
The present invention relates generally to optical positioners, and particularly to a positioning device for optical elements.
2. Technical Background
The alignment and structural attachment of miniature photonic components is a difficult technical problem. Many optical devices have optical tolerances that are large enough to allow the devices to be passively aligned with on another. In passive alignment optical elements are attached either to one another or to a substrate in predetermined locations. Active alignment is required for optical devices having closer optical tolerances. Active alignment is the process of placing an optical element in a desired location by perturbing its location while monitoring the impact of the perturbation on an optical signal. The optical element is repositioned until the optical signal achieves a desired value, e.g., insertion loss is minimized, or a certain waveband of light is transmitted or reflected.
Active alignment of optical elements is used in the construction of numerous optical devices in optical communication systems. Examples of which are alignment of filters in wavelength add/drop multiplexers, aligning lens with light sources, aligning collimators with one another, and optical waveguide fibers with optical devices such as planar optical circuits and active devices.
The active alignment of optical devices is complicated by the fact that after the optical element is positioned it must be fixed into place. During the operation of fixing the optical element in place the optical element must be free of unacceptable shifts in position. Positional shifts may occur in the positional fixing portion of the assembly process, for example, during the cure cycle of a thermally curable adhesive, due to the contraction or expansion of the adhesive.
The present invention facilitates the active alignment of optical elements by allowing for their manipulation in six degrees of freedom.
One aspect of the present invention is a positioner for an optical element. The positioner includes a base having a receptacle and a substantially planar surface slidably engageable with a substrate. The positioner also includes a mounting platform disposed in the receptacle. The receptacle constrains the mounting platform to translation in a direction substantially perpendicular to the substantially planar surface and the mounting platform is configured so as to be free to rotate about three orthogonal axes within the receptacle. The optical element is coupled to the mounting platform. The optical element is aligned with a second optical element by selectively positioning the mounting platform.
In another aspect, the present invention includes a positioner for an optical element. The positioner includes a base having a substantially planar surface slidably engageable with a substrate. The base also includes two vertical members. Each vertical member includes an arcuate surface and a slot. The arcuate surfaces of the two vertical members define a receptacle. A mounting platform is disposed within the receptacle. The mounting platform includes a curved surface. The curved surface allows the mounting platform to be selectively positionable by allowing the mounting platform to slide and rotate within the receptacle. The optical element is mounted to the mounting platform and is positioned by sliding and rotating the mounting platform within the receptacle and sliding the base on the substrate. After the optical element is positioned the mounting platform is coupled to the base and the base is coupled to the substrate.
In another aspect, the present invention includes a positioner for an optical element. The positioner includes a base slidably moveable on a surface. The base includes a substantially cylindrical receptacle. The positioner also includes a mounting platform disposed within the receptacle. The mounting platform includes an arcuate surface and is selectively positionable within the receptacle. The optical element is coupled to the mounting platform and is aligned with another optical element by translating and rotating the mounting platform within the receptacle and sliding the base on the surface, thus providing an alignment system with six degrees of freedom. After the optical elements are aligned the mounting platform is coupled to the base and the base is coupled to the surface.
In another aspect, the present invention includes a method for positioning an optical element. The method includes the steps of providing an optical element, the optical element having an optical axis and providing a mounting platform. The method further includes the step of coupling the optical element to the mounting platform. The method further includes the steps of providing a base, the base having a receptacle and placing the mounting platform in the receptacle, thereby forming an assembly. The method further includes the steps of placing the assembly on a surface and aligning the optical element in accordance with predetermined criteria. The method further includes the steps of coupling the assembly to the surfaces and coupling the mounting platform to the base. Wherein the step of aligning includes the steps of translating the assembly along the surface, translating the mounting platform within the receptacle and rotating the mounting platform within the receptacle.
The positioner for optical elements of the present invention results in a number of advantages over prior art positioners for optical elements. For example the positioner for optical elements of the present invention does not rely on non-elastic deformation of the positioner to maintain the alignment of optical elements.
Another advantage of the present invention is that the present invention may be used with robotic assembly systems thereby allowing the positioning of optical elements with great precision.
Another advantage of the present invention is that optical elements may be aligned and attached in a single assembly step, enabling automated assembly of optical devices.
Another advantage of the present invention is that the optical element being aligned is permanently fixed to the optical platform, ensuring the position and orientation of each optical element relative to other optical elements is maintained.
Additional features and advantages of the invention will be set forth in the detailed description which follows, and in part will be readily apparent to those skilled in the art from that description or recognized by practicing the invention as described herein, including the detailed description which follows, the claims, as well as the appended drawings.
It is to be understood that both the foregoing general description and the following detailed description are merely exemplary of the invention, and are intended to provide an overview or framework for understanding the nature and character of the invention as it is claimed. The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate various embodiments of the invention, and together with the description serve to explain the principles and operation of the invention.
Reference will now be made in detail to the present preferred embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts. An exemplary embodiment of the positioner of the present invention is shown in
In accordance with the invention, the present invention for a positioner 10 for an optical element 11 includes a base 12 and a mounting platform 14.
As embodied herein and shown in
The base 12 includes a planar surface 16. The planar surface 16 allows the base 12 to be positioned anywhere on a flat surface, such as, for example, an interior surface of an optical device or package. A specific example of which is the interior floor of a pump laser package. The planar surface 16 therefore allows reciprocal lineal motion of the positioner 10 along two orthogonal axes as shown by arrows 18 and 20 in
Returning to
It will be apparent to those of ordinary skill in the pertinent art that modifications and variations can be made to the base 12 of the present invention, such as, for example the alternate embodiments of the base 12 shown in
As embodied herein and depicted in
FIG. 12 and
In the front elevation view of the mounting platform 14 of
Returning to
The mounting platform 14 may be made selectively removing material from a sphere. Precision spherical bearings that are readily available from a number of commercial suppliers have proven suitable for fabricating into mounting platforms 18.
The mounting platform 14 may be coupled to the base 12 using an adhesive. An adhesive bond is formed between the arcuate surfaces 94, 96 of the mounting platform 14 and the arcuate surfaces 30, 32 of the base 12. The adhesive may be placed before placing the mounting platform 14 in the receptacle 22 or may be applied using capillary flow between the arcuate surfaces 30, 32 and the arcuate surfaces 94, 96 after the optical element is positioned. Suitable adhesives include, for example, adhesives in which curing is optically initiated, ultraviolet curable adhesives, thermal curing adhesives and time curing epoxies.
Alternatively, the mounting platform 14 may be coupled to the base 12 by brazing, soldering or welding, such as, for example, laser welding.
The base 12 is coupled to the flat surface that the planar surface 16 is slidable upon. The base 12 may be coupled to the flat surface by brazing, welding or adhesive bonding. Preferably the base 12 is welded to the surface using a laser.
In an alternate embodiment, as embodied herein and shown in
Alternatively, the mounting platform 14 may be coupled to the base 12 using an adhesive. An adhesive bond is formed between the arcuate surfaces 94, 96 of the mounting platform 14 and the arcuate surfaces 42, 44, 46, 48 of the base 12. The adhesive may be placed before placing the mounting platform 14 in the receptacle 22 or may be applied using capillary flow between the arcuate surfaces 42, 44, 46, 48 and the arcuate surfaces 94, 96 after the optical element is positioned. Suitable adhesives include, for example, adhesives in which curing is optically initiated, ultraviolet curable adhesives, thermal curing adhesives and time curing epoxies.
In an alternate embodiment of the invention, as embodied herein and shown in
In an alternate embodiment, as embodied herein and shown in
It will be apparent to those of ordinary skill in the pertinent art that modifications and variations can be made to the base 12 of the present invention. Turning to
As embodied herein and depicted in
It will be apparent to those skilled in the art that various modifications and variations can be made to the present invention without departing from the spirit and scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.
Bourcier, Roy J., Forenz, Dominick J., Thompson, Jr., Merle G., Redcay, Tina N.
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Aug 02 2001 | Corning Incorporated | (assignment on the face of the patent) | / | |||
Sep 06 2001 | BOURCIER, ROY J | Corning Incorporated | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012503 | /0930 | |
Sep 06 2001 | THOMPSON, MERLE G , JR | Corning Incorporated | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012503 | /0930 | |
Sep 06 2001 | REDCAY, TINA N | Corning Incorporated | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012503 | /0930 | |
Sep 07 2001 | FORENZ, DOMINICK J | Corning Incorporated | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012503 | /0930 |
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